We use cookies to ensure you have the best browsing experience on our website. Please read our cookie policy for more information about how we use cookies.
  1. Prepare
  2. Data Structures
  3. Linked Lists
  4. Get Node Value
  5. Discussions

Get Node Value

Sort by

recency

|

981 Discussions

|

  • mdsanz
     + 0 comments

    My Java 8 Solution

    public static int getNode(SinglyLinkedListNode llist, int positionFromTail) {
        int lenght = 0;
        SinglyLinkedListNode counterList = llist;
        
        while (counterList != null) {
            lenght++;
            counterList = counterList.next;
        }
        
        int positionFromHead = lenght - positionFromTail - 1;
        int index = 0;
        SinglyLinkedListNode node = llist;
        
        while (index < positionFromHead) {
            node = node.next;
            index++;
        }
        
        return node.data;
    }

  • rajpatel92111213
     + 0 comments
    public static int getNode(SinglyLinkedListNode head, int positionFromTail) {
    // Create two pointers, both starting at the head
    SinglyLinkedListNode fast = head;
    SinglyLinkedListNode slow = head;

    // Move the 'fast' pointer 'positionFromTail' steps ahead
    for (int i = 0; i < positionFromTail; i++) {
        fast = fast.next;
    }

    // Now move both 'fast' and 'slow' one step at a time
    // When 'fast' reaches the last node, 'slow' will be at the target node
    while (fast.next != null) {
        fast = fast.next;
        slow = slow.next;
    }

    // 'slow' is now pointing to the node that is 'positionFromTail' from the end
    return slow.data;
}

  • deepu140698
     + 0 comments

    def getNode(llist, positionFromTail): cur = llist stack = [] while cur : stack.append(cur.data) cur = cur.next for i in range(positionFromTail+1): node_value = stack.pop() return node_value

  • getakhilesh705
     + 0 comments

    simple recursive solution in linear time

        static int count = 0;
    static int val = 0;
    public static int getNode(SinglyLinkedListNode llist, int positionFromTail) {
    if(llist==null){
        count=0;
        return 0;
    }
    getNode(llist.next, positionFromTail);
    if(positionFromTail==count){
        val=llist.data;
    }
    count++;
    return val;
    }

  • emhhacker
     + 0 comments

    My Java solution with linear time complexity and constant space complexity:

    public static int getNode(SinglyLinkedListNode llist, int positionFromTail) {
        int length = getLength(llist);
        int position = (length - 1) - positionFromTail;
        for(int i = 0; i < position; i++){
            llist = llist.next;
        }
        return llist.data;
    }
    
    public static int getLength(SinglyLinkedListNode llist){
        int length = 0;
        while(llist != null){
            length++;
            llist = llist.next;
        }
        return length;
    }